The performed research has a very high potential to impact on society by (i) providing candidates for novel antibacterial medicines with low potential for resistance development or adverse effects, the current technology readiness level (TLR) is between TRL3 and 4 (experimental proof of concept, and technology validated in the lab) [1], (ii) validating the safety of a nanotool for broadening the spectrum of antibacterial medicines to Gram negatives [2], and (iii) validating a model for the rapid assessment of the virulence of the emerging zoonotic pathogen S. suis and therapies against S. suis [3]. In the longer-term (8-12 years after the end of the project) this could have a social benefit reducing deaths due to drug resistant infections which are currently estimated at 50,000 per annum in Europe and predicted to increase dramatically in the coming decades.
The identification of improved HKIs with potential for development as novel antibacterials for animal and human medicine has led to the generation of intellectual property which will bring economic benefits to society if they are successful in clinical trials.
The validated insect in vivo infection model will potentially reduce the number of pigs and mice used in vivo infection studies with S. suis by for example allowing rapid preliminary assessment of the virulence of newly isolated strains and rapid preliminary assessment of the efficacy of therapies against S. suis. Thus, contributing to replacement, reduction, and refinement of the use of animal models (3Rs).
The national and international collaborations within the project have also strengthened academic research networks, aligned resources, attracted interest from industry and funding from national and international organizations. The ER is a member of a JPIAMR international working group (2017) and as a co-applicant has secured funding for the further development of the HKIs from ZonMw (2017-2021). Her research has also been supported by a travel grant and a short-term research grant from the Dutch Cystic Fibrosis Foundation and from FEBS, respectively.
1. Velikova N, Fulle S, Manso AS, Mechkarska M, Finn P, Conlon JM, Oggioni MR, Wells JM, Marina A: Putative histidine kinase inhibitors with antibacterial effect against multi-drug resistant clinical isolates identified by in vitro and in silico screens. Scientific reports 2016, 6:26085.
2. Velikova N, Mas N, Miguel-Romero L, Aguado LP, Stolte E, Zaccaria E, Cao R, Taverne N, Murguia JR, Martinez-Manez R et al: Broadening the antibacterial spectrum of histidine kinase autophosphorylation inhibitors via the use of epsilon-poly-L-lysine capped mesoporous silica-based nanoparticles. Nanomedicine : nanotechnology, biology, and medicine 2016.
3. Velikova N, Kavanagh K, Wells JM: Evaluation of Galleria mellonella larvae for studying the virulence of Streptococcus suis. BMC microbiology 2016, 16(1):291.